1 |
Wall J D, Krumholz L R. Uranium reduction[J]. Annual Review of Microbiology, 2006, 60(1): 149-166.
|
2 |
Zinjarde S, Apte M, Mohite P, et al. Yarrowia lipolytica and pollutants: interactions and applications[J]. Biotechnology Advances, 2014, 32(5): 920-933.
|
3 |
Suzuki Y, Banfield J F. Resistance to, and accumulation of, uranium by bacteria from a uranium-contaminated site[J]. Geomicrobiology Journal, 2004, 21(2): 113-121.
|
4 |
钟娟, 刘兴宇, 张明江, 等. 铀污染的微生物修复技术研究进展[J]. 稀有金属, 2021, 45(1): 93-105.
|
|
Zhong J, Liu X Y, Zhang M J, et al. Research progress of bioremediation technology for uranium contamination[J]. Chinese Journal of Rare Metals, 2021, 45(1): 93-105.
|
5 |
Kang C H, Oh S J, Shin Y, et al. Bioremediation of lead by ureolytic bacteria isolated from soil at abandoned metal mines in South Korea[J]. Ecological Engineering, 2015, 74: 402-407.
|
6 |
Dixit R, Wasiullah, Malaviya D, et al. Bioremediation of heavy metals from soil and aquatic environment: an overview of principles and criteria of fundamental processes[J]. Sustainability, 2015, 7(2): 2189-2212.
|
7 |
Banala U K, Das N P I, Toleti S R. Microbial interactions with uranium: towards an effective bioremediation approach[J]. Environmental Technology & Innovation, 2021, 21: 101254.
|
8 |
王茂林, 吴世军, 杨永强, 等. 微生物诱导碳酸盐沉淀及其在固定重金属领域的应用进展[J]. 环境科学研究, 2018, 31(2): 206-214.
|
|
Wang M L, Wu S J, Yang Y Q, et al. Microbial induced carbonate precipitation and its application for immobilization of heavy metals: a review[J]. Research of Environmental Sciences, 2018, 31(2): 206-214.
|
9 |
Hammes F, Verstraete W. Key roles of pH and calcium metabolism in microbial carbonate precipitation[J]. Reviews in Environmental Science and Biotechnology, 2002, 1(1): 3-7.
|
10 |
de Muynck W, de Belie N, Verstraete W. Microbial carbonate precipitation in construction materials: a review[J]. Ecological Engineering, 2010, 36(2): 118-136.
|
11 |
钱春香, 王瑞兴, 詹其伟. 微生物矿化的工程应用基础[M]. 北京: 科学出版社, 2015.
|
|
Qian C X, Wang R X, Zhan Q W. Basis of Microbial Mineralization Applied in Engineering[M]. Beijing: Science Press, 2015.
|
12 |
Stocks-Fischer S, Galinat J K, Bang S S. Microbiological precipitation of CaCO3[J]. Soil Biology and Biochemistry, 1999, 31(11): 1563-1571.
|
13 |
Achal V, Pan X L, Lee D J, et al. Remediation of Cr(Ⅵ) from chromium slag by biocementation[J]. Chemosphere, 2013, 93(7): 1352-1358.
|
14 |
王瑞兴, 钱春香, 吴淼, 等. 微生物矿化固结土壤中重金属研究[J]. 功能材料, 2007, 38(9): 1523-1526, 1530.
|
|
Wang R X, Qian C X, Wu M, et al. Study on heavy metals in soil mineralized by bacteria[J]. Journal of Functional Materials, 2007, 38(9): 1523-1526, 1530.
|
15 |
钱春香, 许燕波, 胡黎明, 等. 一种微生物固结污染体系中Cu2+的研究[J]. 环境科学与技术, 2011, 34(S2): 33-36.
|
|
Qian C X, Xu Y B, Hu L M, et al. Study on Cu2+ in contaminated system mineralized by bacteria[J]. Environmental Science & Technology, 2011, 34(S2): 33-36.
|
16 |
Zhu X J, Li W L, Zhan L, et al. The large-scale process of microbial carbonate precipitation for nickel remediation from an industrial soil[J]. Environmental Pollution, 2016, 219: 149-155.
|
17 |
Lauchnor E G, Schultz L N, Bugni S, et al. Bacterially induced calcium carbonate precipitation and strontium coprecipitation in a porous media flow system[J]. Environmental Science & Technology, 2013, 47(3): 1557-1564.
|
18 |
国家环境保护总局. 环境样品中微量铀的分析方法: [S]. 北京: 中国环境科学出版社, 2017.
|
|
State Environmental Protection Administration of the People's Republic of China. Technical guidelines for environmental impact assessment. analytical methods for micro-quantity of uranium in environmental samples: [S]. Beijing: China Environmental Science Press, 2017.
|
19 |
李亚星, 徐秋明, 曹一平, 等. 分光光度法测定树脂包衣尿素溶出的研究[J]. 中国土壤与肥料, 2010(1): 84-87.
|
|
Li Y X, Xu Q M, Cao Y P, et al. Colorimetric estimation of urea release rate in coated urea[J]. Soil and Fertilizer Sciences in China, 2010(1): 84-87.
|
20 |
Fujita Y, Ferris F G, Lawson R D, et al. Subscribed content calcium carbonate precipitation by ureolytic subsurface bacteria[J]. Geomicrobiology Journal, 2000, 17(4): 305-318.
|
21 |
许燕波, 钱春香, 陆兆文. 微生物矿化修复铅离子污染的研究[J]. 化工时刊, 2012, 26(6): 14-17.
|
|
Xu Y B, Qian C X, Lu Z W. Study on Pb2+ mineralized by bacteria for remediation[J]. Chemical Industry Times, 2012, 26(6): 14-17.
|
22 |
Behrends T, Krawczyk-Bärsch E, Arnold T. Implementation of microbial processes in the performance assessment of spent nuclear fuel repositories[J]. Applied Geochemistry, 2012, 27(2): 453-462.
|
23 |
Jroundi F, Merroun M L, Arias J M, et al. Spectroscopic and microscopic characterization of uranium biomineralization in Myxococcus xanthus[J]. Geomicrobiology Journal, 2007, 24(5): 441-449.
|
24 |
Selenska-Pobell S, Kampf G, Flemming K, et al. Bacterial diversity in soil samples from two uranium waste piles as determined by rep-APD, RISA and 16S rDNA retrieval[J]. Antonie Van Leeuwenhoek, 2001, 79(2): 149-161.
|
25 |
陈小攀, 冯秀娟. 微生物对重金属元素作用机理综述[J]. 有色金属科学与工程, 2012, 3(3): 56-59.
|
|
Chen X P, Feng X J. Review on mechanism of microbiological effects on heavy metals[J]. Nonferrous Metals Science and Engineering, 2012, 3(3): 56-59.
|
26 |
Mugwar A J, Harbottle M J. Toxicity effects on metal sequestration by microbially-induced carbonate precipitation[J]. Journal of Hazardous Materials, 2016, 314: 237-248.
|
27 |
He Z F, Geng S, Pan Y W, et al. Improvement of the trace metal composition of medium for nitrite-dependent anaerobic methane oxidation bacteria: iron(Ⅱ) and copper(Ⅱ) make a difference[J]. Water Research, 2015, 85: 235-243.
|
28 |
Achal V, Mukherjee A, Basu P C, et al. Strain improvement of Sporosarcina pasteurii for enhanced urease and calcite production[J]. Journal of Industrial Microbiology & Biotechnology, 2009, 36(7): 981-988.
|
29 |
Kumari D, Pan X L, Lee D J, et al. Immobilization of cadmium in soil by microbially induced carbonate precipitation with Exiguobacterium undae at low temperature[J]. International Biodeterioration & Biodegradation, 2014, 94: 98-102.
|
30 |
Reeder R J, Nugent M, Tait C D, et al. Coprecipitation of uranium(Ⅵ) with calcite: XAFS, micro-XAS, and luminescence characterization[J]. Geochimica et Cosmochimica Acta, 2001, 65(20): 3491-3503.
|
31 |
Achal V, Pan X L, Fu Q L, et al. Biomineralization based remediation of As(Ⅲ) contaminated soil by Sporosarcina ginsengisoli[J]. Journal of Hazardous Materials, 2012, 201/202: 178-184.
|
32 |
Gabitov R, Migdisov A, Nguyen A, et al. Uptake of uranium by carbonate crystallization from reduced and oxidized hydrothermal fluids[J]. Chemical Geology, 2021, 564: 120054.
|
33 |
Reeder R J, Nugent M, Lamble G M, et al. Uranyl incorporation into calcite and aragonite: XAFS and luminescence studies[J]. Environmental Science & Technology, 2000, 34(4): 638-644.
|
34 |
邹兆庄. 铀矿山放射性污染场地修复技术方法研究[D]. 北京: 核工业北京地质研究院, 2015.
|
|
Zou Z Z. Study on remediation technology and method of radioactive contaminated site in uranium mine[D]. Beijing: Beijing Research Institute of Uranium Geology, 2015.
|